BriefGPT.xyz
Oct, 2017
更深,更广,更艺术化的领域泛化
Deeper, Broader and Artier Domain Generalization
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Da Li, Yongxin Yang, Yi-Zhe Song, Timothy M. Hospedales
TL;DR
本文主要介绍了如何利用深度学习和CNN模型处理领域泛化问题,建立起一个更加完整的基准测试数据集,并在其中进行了对比实验,证明了该方法的优越性以及提出的数据集的更高难度值。
Abstract
The problem of
domain generalization
is to learn from multiple training domains, and extract a domain-agnostic model that can then be applied to an unseen domain.
domain generalization
(DG) has a clear motivation
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